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Facile Synthesis of Fe2O3 Nano-Dots@Nitrogen-Doped Graphene for Supercapacitor Electrode with Ultralong Cycle Life in KOH Electrolyte

机译:超级电容器电极中超长循环寿命的Fe2O3纳米点@氮掺杂石墨烯的快速合成

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摘要

Fe2O3 nanodots supported on nitrogen-doped graphene sheets (denoted as Fe2O3 NDs@NG) with different loading masses are prepared through a facile one-pot solvothermal method. The resulting Fe2O3 NDs@NG composites exhibit outstanding electrochemical properties in aqueous KOH electrolyte. Among them, with the optimal loading mass of Fe2O3 NDs, the corresponding Fe2O3 NDs@NG-0.75 sample is able to deliver a high specific capacitance of 274 F g(-1) at 1 A g(-1) and the capacitance is still as high as 140 F g(-1) even at a ultrahigh current density of 50 A g(-1), indicating excellent rate capability. More remarkably, it displays superior capacitance retention after 100 000 cycles (about 75.3% at 5 A g(-1)), providing the best reported long-term cycling stability for iron oxides in alkaline electrolytes to date. Such excellent electrochemical performance is attributed to the right combination of highly dispersed Fe2O3 NDs and appropriately nitrogen-doped graphene sheets, which enable the Fe2O3 ND5@NG-0.75 to offer plenty of accessible redox active sites, facilitate the electron transfer and electrolyte diffusion, as well as effectively alleviate the volume change of Fe2O3 NDs during the charge discharge process.
机译:通过简便的一锅溶剂热法制备了负载量不同的掺氮石墨烯片上的Fe2O3纳米点(表示为Fe2O3 NDs @ NG)。所得的Fe2O3 NDs @ NG复合材料在水性KOH电解质中表现出出色的电化学性能。其中,在Fe2O3 NDs的最佳负载质量下,相应的Fe2O3 NDs@NG-0.75样品能够在1 A g(-1)时提供274 F g(-1)的高比电容,并且电容仍为即使在50 A g(-1)的超高电流密度下也可高达140 F g(-1),表明极好的速率能力。更引人注目的是,它在10万次循环后显示出优异的电容保持率(在5 A g(-1)时约为75.3%),为迄今为止碱性电解质中的氧化铁提供了最佳的长期循环稳定性。如此出色的电化学性能归因于高度分散的Fe2O3 NDs和适当的氮掺杂石墨烯片的正确组合,这使Fe2O3 ND5@NG-0.75能够提供大量可访问的氧化还原活性位点,促进电子转移和电解质扩散,因为并有效地减轻了电荷放电过程中Fe2O3 NDs的体积变化。

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